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잣나무 열압밀화재의 열처리를 통한 치수안정화
Dimensional Stabilization through Heat Treatment of Thermally Compressed Wood of Korean Pine 원문보기

목재공학 = Journal of the Korean wood science and technology, v.46 no.5, 2018년, pp.471 - 485  

Lee, Jeong Min (Department of Wood and Paper Science, College of Agriculture & Life Sciences, Kyungpook National University) ,  Lee, Won Hee (Department of Wood and Paper Science, Institute of Agricultural Science and Technology, College of Agriculture & Life Sciences, Kyungpook National University)

초록
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잣나무 열압밀화재의 완전한 치수안정화를 위해 열압밀화 후 열처리를 하였다. 열처리가 된 열압밀화재의 치수안정성 평가를 위해 흡수시험을 실시하였다. 0.43의 비중인 목재를 두께 압축률 50%로 열압밀화를 실시하여 0.79의 비중을 가진 고비중재를 얻었다. 열압밀화 후 열처리를 통하여 열처리 온도와 시간이 증가함에 따라 흡수성과 팽윤성이 감소하였다. 두께 회복률의 경우는 $120^{\circ}C$, $140^{\circ}C$, $160^{\circ}C$ 모두 24시간동안 열처리를 진행하였을 때, 1% 미만의 두께 회복도를 나타내었다. 따라서 열압밀화재의 치수안정화는 후 열처리 공정을 통하여 매우 효과적으로 시행할 수 있는 방법임을 확인할 수 있었다.

Abstract AI-Helper 아이콘AI-Helper

Post-heat treatment experiments were carried out for complete dimensional stabilization of thermally compressed wood (Pinus koraiensis). An absorption test was carried out to evaluate the dimensional stability. The specific gravity increased from 0.43 to 0.79 by thermal compression at a compression ...

주제어

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제안 방법

  • Five specimens were processed at 120ºC, 140ºC, and 160ºC for 2, 6, 12, and 24 hours for each condition.
  • The study examined the dimensional stability of thermally compressed wood of Korean pine after the post-heat treatment based on each of the thermal compression conditions and the heat treatment conditions. The wood of Korean pine of which specific gravity was 0.
  • The test aimed to acquire the dimensional stability by the thermal compression and air-dry process of Korean pine and examine the optimal conditions for the dimensional stabilization and reviewed the result of the test.
  • The three sides of all specimens were exposed to the air and placed in a desiccator, and using a load plate with holes, they were submerged about 50 mm below the water. To measure the amount of absorption and the swelling ratio based on the absorption time, the weight and thickness of the specimens were measured in every 30 minutes from the start to two hours, in every one hour from two to five hours, in every two hours from five to nine hours, and in every three hours from nine to 24 hours. Before each measurement, the specimens were wiped with dry towel to remove the moisture on the surface.

대상 데이터

  • However, in this study all sides were exposed to moisture to conduct the test under the same conditions as those of the previous studies. A total of 20 specimens were used for each thermal process temperature setting. The three sides of all specimens were exposed to the air and placed in a desiccator, and using a load plate with holes, they were submerged about 50 mm below the water.
  • This study used Korean pine (Pinus koraiensis) among Korean soft wood species. Flat-sawn Korean pine were cut in 60mm(L) × 60mm (T) × 24mm (R) to create a specimen.

이론/모형

  • To verify the dimensional stability of the specimen, a 24-hour absorption test was conducted based on KS F 2204. In KS F 2204, the waterproof paint is applied to the side that is not the absorption side so that moisture cannot be absorbed.
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참고문헌 (16)

  1. Cho, B.G., Hwang, S.W., Kang, H.Y., Lee, W.H. 2015. Change of Dimensional Stability of Thermally Compressed Korean Pine (Pinus koraiensis Sieb. et Zucc.) Wood by Heat Treatment. Journal of the Korean Wood Science and Technology 43(4): 470-477. 

  2. Dwianto, W., Inoue, M., Norimoto, M. 1997. Fixation of compressive deformation of wood by heat treatment. Mokuzai Gakkaishi 43(4): 303-309. 

  3. Gerhards, C.C. 2007. Effect of moisture content and temperature on the mechanical properties of wood: an analysis of immediate effects. Wood and Fiber Science 14(1): 4-36. 

  4. Hillis, W.E. 1984. High temperature and chemical effects on wood stability. Wood Science and Technology 18(4): 281-293. 

  5. Hwang, S.W., Cho, B.G., Lee, W.H. 2014. Mechanical Properties of Thermally Compressed Domestic Softwoods. Journal of the Korean Wood Science and Technology 42(6): 666-674. 

  6. Hwang, S.W., Cho, B.G., Lee, W.H. 2015. Hardness and Dimensional Stability of Thermally Compressed Domestic Korean Pine. Journal of the Korean Wood Science and Technology 43(1): 68-75. 

  7. Inoue, M., Sekino, N., Morooka, T., Rowell, R.M., Norimoto, M. 2008. Fixation of Compressive Deformation in Wood by Pre-Steaming. Journal of Tropical Forest Science 20(4): 273-281. 

  8. Inoue. M., Norimoto, M., Otsuka, Y., Yamada, T. 1991. Surface compression of coniferous wood lumber. II. Mokuzai Gakkaishi 37: 227-233. 

  9. Inoue. M., Norimoto, M. 1991. Permanent fixation of compressive deformation in wood by heat treatment. Wood Res Tech Notes 27: 31-40. 

  10. Inoue, M., Norimoto, M., Tahanashi, M., Rowell, R.M. 1993. Steam or heat fixation of compressed wood. Wood and Fiber Science 25(3): 224-235. 

  11. Jung, S.S., Lee, W.H. 1998. Characteristics of Moisture Absorption for Heat-Compressed Wood. [Characteristics of Moisture Absorption for Heat- Compressed Wood]. Journal of the Korea furniture Society 9(1): 9-16. 

  12. Korea Forest Service. 2018. Statistical Yearbook of Forestry. 

  13. Korean Standard Association. 2014. KS F 2204 Method of test for water absorption of wood. 

  14. Laine, K., Belt, T., Rautkari, L., Ramsay, J., Hill, C.A.S., Hughes, M. 2013. Measuring the thickness swelling and set-recovery of densified and thermally modified Scots pine solid wood. Journal of Materials Science 48(24): 8530-8538. 

  15. Morsing, N. 2000. Densification of wood. The influence of Hygrothermal treatment on compression of beech perpendicular to the grain. Department of Structural Engineering and Materials Technical University of Denmark. Series R No 79. 

  16. Norimoto, M., Ota, C., Akitsu, H., Yamada, T. 1993. Permanent Fixation of Bending Deformation in Wood by Heat Treatment. Wood Research : bulletin of the Wood Research Institute Kyoto University. No 79: 23-33. 

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